Practical limitations of superresolution imaging due to conventional sample preparation revealed by a direct comparison of CLSM, SIM and dSTORM
- PMID: 26694787
- DOI: 10.1111/jmi.12365
Practical limitations of superresolution imaging due to conventional sample preparation revealed by a direct comparison of CLSM, SIM and dSTORM
Abstract
We evaluate the suitability of conventional sample preparation and labelling methods for two superresolution techniques, structured illumination microscopy and direct stochastic optical reconstruction microscopy, by a comparison to established confocal laser scanning microscopy. We show that SIM is compatible with standard fixation procedures and immunofluorescence labelling protocols and improves resolution by a factor of two compared to confocal laser scanning microscopy. With direct stochastic optical reconstruction microscopy, fluorophores can theoretically be localized with much higher precision. However, in practice, with indirect immunofluorescence labelling density can be insufficient due to the bulky probes to reveal biological structures with high resolution. Fine structures like single actin fibres are in fact resolved with direct stochastic optical reconstruction microscopy when using small affinity probes, but require proper adjustment of the fixation protocol. Finally, by a direct comparison of immunofluorescent and genetic labelling with fluorescent proteins, we show that target morphology in direct stochastic optical reconstruction microscopy data sets can differ significantly depending on the labelling method and the molecular environment of the target.
Keywords: CLSM; PALM; SIM; chemical fixation; dSTORM; superresolution microscopy.
© 2015 The Authors Journal of Microscopy © 2015 Royal Microscopical Society.
Similar articles
-
Direct stochastic optical reconstruction microscopy with standard fluorescent probes.Nat Protoc. 2011 Jun 16;6(7):991-1009. doi: 10.1038/nprot.2011.336. Nat Protoc. 2011. PMID: 21720313
-
Stochastic optical reconstruction microscopy (STORM): a method for superresolution fluorescence imaging.Cold Spring Harb Protoc. 2013 Jun 1;2013(6):498-520. doi: 10.1101/pdb.top075143. Cold Spring Harb Protoc. 2013. PMID: 23734025
-
Direct stochastic optical reconstruction microscopy (dSTORM).Methods Mol Biol. 2015;1251:263-76. doi: 10.1007/978-1-4939-2080-8_14. Methods Mol Biol. 2015. PMID: 25391804
-
Technical review: types of imaging-direct STORM.Anat Rec (Hoboken). 2014 Dec;297(12):2227-31. doi: 10.1002/ar.22960. Epub 2014 Jul 4. Anat Rec (Hoboken). 2014. PMID: 24995970 Review.
-
From single molecules to life: microscopy at the nanoscale.Anal Bioanal Chem. 2016 Oct;408(25):6885-911. doi: 10.1007/s00216-016-9781-8. Epub 2016 Sep 9. Anal Bioanal Chem. 2016. PMID: 27613013 Free PMC article. Review.
Cited by
-
4polar-STORM polarized super-resolution imaging of actin filament organization in cells.Nat Commun. 2022 Jan 13;13(1):301. doi: 10.1038/s41467-022-27966-w. Nat Commun. 2022. PMID: 35027553 Free PMC article.
-
Concepts in Light Microscopy of Viruses.Viruses. 2018 Apr 18;10(4):202. doi: 10.3390/v10040202. Viruses. 2018. PMID: 29670029 Free PMC article. Review.
-
Spectral image scanning microscopy.Biomed Opt Express. 2019 Apr 22;10(5):2513-2527. doi: 10.1364/BOE.10.002513. eCollection 2019 May 1. Biomed Opt Express. 2019. PMID: 31143501 Free PMC article.
-
Phenotypic analysis of extracellular vesicles: a review on the applications of fluorescence.J Extracell Vesicles. 2020 Jan 7;9(1):1710020. doi: 10.1080/20013078.2019.1710020. eCollection 2020. J Extracell Vesicles. 2020. PMID: 32002172 Free PMC article. Review.
-
The phagocytic state of brain myeloid cells after ischemia revealed by superresolution structured illumination microscopy.J Neuroinflammation. 2019 Jan 16;16(1):9. doi: 10.1186/s12974-019-1401-z. J Neuroinflammation. 2019. PMID: 30651101 Free PMC article.
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources